We have recently shown that the bile acid (BA) taurochenodeoxycholate (TCDC) acutely stimulates insulin secretion via activation of the farnesoid X receptor (FXR). Aims of the current investigation were to discriminate between nongenomic (≤1 h) and genomic effects (24-48 h) of BAs on β-cells and to evaluate whether FXR can modulate the adverse effects of a high-fat diet (HFD). TCDC (500 nM) as well as glycine-conjugated and unconjugated CDC (chenodeoxycholate) increased insulin secretion in acute incubations but did not evoke additional effects after 1-2 days of preincubation. The BAs did not stimulate β-cells of FXR-knockout (KO) mice and activation of the G protein-coupled BA receptor TGR5 was ineffective, suggesting that FXR is the sole BA receptor in β-cells activated by TCDC and its analogues. As opposed to lean mice, obese FXR-KO mice did not show HFD-induced glucose intolerance and increased fasting glucose. The beneficial impact of FXR-KO on glucose metabolism cannot be explained by an adaptive compensation of insulin secretion or β-cell mass. Interestingly, in contrast to its effect on islets from lean mice, the FXR agonist GW4064 was ineffective in stimulating insulin secretion of islets from wild type mice fed a HFD or isolated islets kept in a glucolipotoxic medium. Additional feeding of CDC restored the effect of GW4064. CDC prevented HFD-induced impairment of glucose tolerance and in vitro effects of glucolipotoxicity. The data show that the FXR is the most important BA receptor in β-cells and that FXR signaling in β-cells is impaired by overnutrition, which alters activatability of the FXR.
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http://dx.doi.org/10.1210/en.2014-1751 | DOI Listing |
PLoS One
January 2025
Department of Clinical Science, SUS, Division of Islet Cell Physiology, University of Lund, Malmö, Sweden.
The impact of islet neuronal nitric oxide synthase (nNOS) on glucose-stimulated insulin secretion (GSIS) is less understood. We investigated this issue by performing simultaneous measurements of the activity of nNOS versus inducible NOS (iNOS) in GSIS using isolated murine islets. Additionally, the significance of extracellular NO on GSIS was studied.
View Article and Find Full Text PDFJ Med Chem
January 2025
School of Pharmacy, Sungkyunkwan University, Suwon 16419, Republic of Korea.
GPR119 has emerged as a promising target for treating type 2 diabetes and associated obesity, as its stimulation induces the secretion of glucagon-like peptide-1 and glucose-dependent insulinotropic peptide in the intestinal tract as well as the glucose-dependent release of insulin in pancreatic β-cells. We describe the design and synthesis of novel GPR119 agonists containing a 1,4-disubstituted cyclohexene scaffold. Compound displayed nanomolar potency (EC = 3.
View Article and Find Full Text PDFMetabolites
January 2025
Nestlé Health Science, 1000 Lausanne, Switzerland.
: Whey protein (WP) consumption prior to a meal curbs appetite and reduces postprandial glucose (PPG) through stimulating endogenous GLP-1 secretion and insulin. : We assessed the metabolic effects of a concentrated WP, using a new micelle-technology (WPM), in people with type 2 diabetes (T2D) and overweight or obesity (NCT04639726). In a randomized-crossover design, participants performed two 240 min lunch meal (622 kcal) tests 7 ± 4 days apart.
View Article and Find Full Text PDFCells
January 2025
Biomedical Research Center, Qatar University, Doha P.O. Box 2713, Qatar.
GATA-3 is a master regulator of preadipocyte differentiation and function. Pharmacological or genetic targeting of GATA-3 will allow us to understand the function of GATA-3 in regulating metabolism, insulin signaling, and inflammation. Pyrrothiogatain, a novel small molecule inhibitor of GATA family proteins, has emerged as a promising tool for modulating GATA-3 activity.
View Article and Find Full Text PDFJ Mol Cell Biol
January 2025
Department of Endocrinology, Beijing Diabetes Institute, Beijing Key Laboratory of Diabetes Research and Care, Beijing Tongren Hospital, Capital Medical University, Beijing 100730, China.
Insulin secretion is mainly regulated by two electrophysiological events, depolarization initiated by the closure of ATP-sensitive K+ (KATP) channels and repolarization mediated by K+ efflux. Quinine, a natural component commonly used for the treatment of malaria, has been reported to directly stimulate insulin release and lead to hypoglycemia in patients during treatment through inhibiting KATP channels. In this study, we verified the insulinotropic effect of quinine on the isolated mouse pancreatic islets.
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